JP2013116277A - Electronic endoscope, white balance adjustment method, electronic endoscope system, and white balance adjustment tool - Google Patents

Electronic endoscope, white balance adjustment method, electronic endoscope system, and white balance adjustment tool Download PDF

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JP2013116277A
JP2013116277A JP2011266050A JP2011266050A JP2013116277A JP 2013116277 A JP2013116277 A JP 2013116277A JP 2011266050 A JP2011266050 A JP 2011266050A JP 2011266050 A JP2011266050 A JP 2011266050A JP 2013116277 A JP2013116277 A JP 2013116277A
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white balance
balance adjustment
electronic endoscope
image sensor
video signal
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JP5863428B2 (en
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Yasu Akino
縁 秋野
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Hoya Corp
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B1/00Instruments for performing medical examinations of the interior of cavities or tubes of the body by visual or photographical inspection, e.g. endoscopes; Illuminating arrangements therefor
    • A61B1/00002Operational features of endoscopes
    • A61B1/00057Operational features of endoscopes provided with means for testing or calibration
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B1/00Instruments for performing medical examinations of the interior of cavities or tubes of the body by visual or photographical inspection, e.g. endoscopes; Illuminating arrangements therefor
    • A61B1/00163Optical arrangements
    • A61B1/00174Optical arrangements characterised by the viewing angles
    • A61B1/00177Optical arrangements characterised by the viewing angles for 90 degrees side-viewing
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B1/00Instruments for performing medical examinations of the interior of cavities or tubes of the body by visual or photographical inspection, e.g. endoscopes; Illuminating arrangements therefor
    • A61B1/00163Optical arrangements
    • A61B1/00174Optical arrangements characterised by the viewing angles
    • A61B1/00181Optical arrangements characterised by the viewing angles for multiple fixed viewing angles
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B1/00Instruments for performing medical examinations of the interior of cavities or tubes of the body by visual or photographical inspection, e.g. endoscopes; Illuminating arrangements therefor
    • A61B1/04Instruments for performing medical examinations of the interior of cavities or tubes of the body by visual or photographical inspection, e.g. endoscopes; Illuminating arrangements therefor combined with photographic or television appliances
    • A61B1/045Control thereof
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/80Camera processing pipelines; Components thereof
    • H04N23/84Camera processing pipelines; Components thereof for processing colour signals
    • H04N23/88Camera processing pipelines; Components thereof for processing colour signals for colour balance, e.g. white-balance circuits or colour temperature control

Abstract

PROBLEM TO BE SOLVED: To provide an electronic endoscope capable of adjusting the white balance of two imaging devices at once, and to provide a white balance adjustment method, an electronic endoscope system and a white balance adjustment tool.SOLUTION: The electronic endoscope 10 includes: a first imaging part 12 provided on an insertion part distal end 11a; a second imaging part 13 provided on an insertion part side face 11b; and a memory for storing a difference between the gain value of video signals after white balance adjustment of the first imaging part 12 upon shipping and the gain value of video signals after white balance adjustment of the second imaging part 13, as a correction value for the white balance during observation. The white balance adjustment jig 50 includes: a bottom part 51 facing the first imaging part 12; and a wall part (projection part) 52a facing the second imaging part 13. During the observation, a difference between the gain value of the video signals after the white balance adjustment of the first imaging part 12 and the correction value stored in the memory is used as the gain value of the video signals of the second imaging part 13.

Description

本発明は、電子内視鏡スコープ、ホワイトバランス調整方法、電子内視鏡システムおよびホワイトバランス調整治具に関する。   The present invention relates to an electronic endoscope scope, a white balance adjustment method, an electronic endoscope system, and a white balance adjustment jig.

小腸や大腸等の消化器を観察する電子内視鏡では、観察時の見落としを防ぐと共に、観察時間を短くするために、1度で360°を観察可能であることが望ましい。そこで、電子内視鏡スコープに複数の撮像素子を設けることにより、複数の撮像素子により同時に観察可能な電子内視鏡システムの開発が進められている。   In an electronic endoscope for observing digestive organs such as the small intestine and large intestine, it is desirable to be able to observe 360 ° at a time in order to prevent oversight during observation and to shorten the observation time. In view of this, development of an electronic endoscope system in which a plurality of image sensors are provided in an electronic endoscope scope and which can be simultaneously observed by a plurality of image sensors has been advanced.

一般に、電子内視鏡システムにおいては、被写体から得られた映像信号に対して行うホワイトバランスの実行には、撮像素子を覆う筒状の治具を用い、撮影画像が白くなるように調整する。このホワイトバランス調整を、2つの撮像部を有する複眼カメラにおいてそれぞれ実行する例が提案されている(特許文献1、2参照)。   In general, in an electronic endoscope system, a white jig performed on a video signal obtained from a subject is adjusted using a cylindrical jig that covers an image sensor so that a captured image becomes white. There have been proposed examples in which this white balance adjustment is performed in a compound eye camera having two imaging units (see Patent Documents 1 and 2).

特開2009−130681号公報JP 2009-130681 A 特開昭63−244011号公報JP-A 63-244011

しかしながら、2つの撮像部が同じ光軸方向を向き、撮像素子との距離が近い場合には上述の治具でもホワイトバランスの実行が可能であるが、2つの撮像素子の距離が離れている場合には、ホワイトバランス調整治具に2つの撮像素子が収まらなくなるため、各撮像素子に対してそれぞれホワイトバランス調整する必要がある。また、各撮像素子に対するホワイトバランス調整治具が必要となる。   However, when the two image pickup units face the same optical axis direction and the distance from the image sensor is short, white balance can be executed using the above-described jig, but the distance between the two image sensors is long. In this case, since the two image sensors cannot be accommodated in the white balance adjustment jig, it is necessary to adjust the white balance for each image sensor. Further, a white balance adjustment jig for each image sensor is required.

したがって、本発明は、複数の撮像素子を1度でホワイトバランス調整可能な電子内視鏡スコープ、ホワイトバランス調整方法、電子内視鏡及びシステムホワイトバランス調整治具を提供することを課題とする。   Therefore, an object of the present invention is to provide an electronic endoscope scope, a white balance adjustment method, an electronic endoscope, and a system white balance adjustment jig capable of white balance adjustment of a plurality of image sensors at a time.

本発明は上記課題を解決するためになされたものであり、本発明に係る電子内視鏡スコープは、挿入部の先端に設けられた第1の撮像素子と、挿入部の側面に設けられた第2の撮像素子と、第1の撮像素子から読みだされる映像信号に対して第1のホワイトバランス調整が施された後の映像信号のゲイン値と、第2の撮像素子から読みだされる映像信号に対して第2のホワイトバランス調整が施された後の映像信号のゲイン値との差分を、観察時におけるホワイトバランス用の補正値として記憶するメモリとを備えることを特徴とする。   The present invention has been made to solve the above problems, and an electronic endoscope scope according to the present invention is provided on a first imaging element provided at a distal end of an insertion portion and on a side surface of the insertion portion. The second image sensor, the gain value of the video signal after the first white balance adjustment is performed on the video signal read from the first image sensor, and the second image sensor And a memory that stores a difference between the gain value of the video signal after the second white balance adjustment is performed on the video signal as a correction value for white balance at the time of observation.

この電子内視鏡スコープでは、本発明に係るホワイトバランス調整治具により、挿入部の先端と側面に設けられた各撮像素子の出荷時及び観察時におけるホワイトバランス調整が、ホワイトバランス調整治具に1度挿入しただけで実行される。   In this electronic endoscope scope, the white balance adjustment jig at the time of shipment and observation of each image sensor provided on the tip and side of the insertion portion is made into a white balance adjustment jig by the white balance adjustment jig according to the present invention. It is executed just by inserting it once.

この電子内視鏡スコープにおいて、広範囲を1度で観察可能とするためには、第2の撮像素子は、挿入部の湾曲部に設けられることが好ましい。   In this electronic endoscope scope, it is preferable that the second imaging element is provided in the bending portion of the insertion portion so that a wide range can be observed at a time.

本発明に係るホワイトバランス調整方法は、本発明に係る電子内視鏡スコープのホワイトバランス調整方法であって、第1の撮像素子から読みだされる映像信号に対して第3のホワイトバランス調整を施し、第3のホワイトバランス調整後の第1の撮像素子の映像信号のゲイン値と、メモリに記憶された補正値との差分を、観察時における第2の撮像素子の映像信号のゲイン値として算出することを特徴とする。   A white balance adjustment method according to the present invention is a white balance adjustment method for an electronic endoscope scope according to the present invention, in which a third white balance adjustment is performed on a video signal read from a first image sensor. The difference between the gain value of the video signal of the first image sensor after the third white balance adjustment and the correction value stored in the memory is used as the gain value of the video signal of the second image sensor at the time of observation. It is characterized by calculating.

この方法により、本発明に係る電子内視鏡スコープの観察時におけるホワイトバランス調整が、1度で実行される。   By this method, the white balance adjustment at the time of observation of the electronic endoscope scope according to the present invention is executed once.

本発明に係る電子内視鏡システムは、挿入部の先端に設けられた第1の撮像素子と、挿入部の側面に設けられた第2の撮像素子と、第1の撮像素子から読みだされる映像信号に対して第1のホワイトバランス調整が施された後の映像信号のゲイン値と、第2の撮像素子から読みだされる映像信号に対して第2のホワイトバランス調整が施された後の映像信号のゲイン値との差分を、観察時におけるホワイトバランス用の補正値として記憶するメモリとを備える電子内視鏡スコープと、第1の撮像素子に対向する底部と、第2の撮像素子に対向する壁部とを備える電子内視鏡スコープのホワイトバランス調整治具と、を備えることを特徴とする。   The electronic endoscope system according to the present invention is read from the first image sensor provided at the distal end of the insertion section, the second image sensor provided on the side surface of the insertion section, and the first image sensor. The second white balance adjustment was performed on the video signal gain value after the first white balance adjustment was performed on the video signal and the video signal read from the second image sensor. An electronic endoscope scope including a memory for storing a difference from a gain value of a subsequent video signal as a correction value for white balance at the time of observation, a bottom portion facing the first imaging element, and a second imaging And a white balance adjustment jig of an electronic endoscope scope including a wall portion facing the element.

この電子内視鏡システムでは、生産時及び観察時におけるホワイトバランス調整が、1度で実行される。   In this electronic endoscope system, white balance adjustment at the time of production and observation is executed once.

本発明に係るホワイトバランス調整治具は、挿入部の先端に設けられた第1の撮像素子と、挿入部の側面に設けられた第2の撮像素子とを備える電子内視鏡スコープのホワイトバランス調整治具であって、ホワイトバランス調整治具は、第1の撮像素子に対向する底部と、第2の撮像素子に対向する壁部とを備えることを特徴とする。   A white balance adjusting jig according to the present invention is a white balance of an electronic endoscope scope that includes a first image sensor provided at a distal end of an insertion portion and a second image sensor provided on a side surface of the insertion portion. An adjustment jig, wherein the white balance adjustment jig includes a bottom portion facing the first image sensor and a wall portion facing the second image sensor.

この構成により、本発明に係る電子内視鏡スコープの各撮像素子のホワイトバランス調整が1度で実行される。   With this configuration, the white balance adjustment of each image sensor of the electronic endoscope scope according to the present invention is executed at a time.

本発明によれば、複数の撮像素子を1度でホワイトバランス調整可能な電子内視鏡スコープ、ホワイトバランス調整方法、電子内視鏡システム及びホワイトバランス調整治具を提供することができる。   According to the present invention, it is possible to provide an electronic endoscope scope, a white balance adjustment method, an electronic endoscope system, and a white balance adjustment jig capable of adjusting a white balance of a plurality of image sensors at a time.

本発明の実施形態に係る電子内視鏡スコープを備える電子内視鏡システムの構成と回路構成を示す説明図である。It is explanatory drawing which shows the structure and circuit structure of an electronic endoscope system provided with the electronic endoscope scope which concerns on embodiment of this invention. 本発明の実施形態に係る電子内視鏡スコープがホワイトバランス調整治具に挿入された状態を説明する説明図である。It is explanatory drawing explaining the state by which the electronic endoscope scope which concerns on embodiment of this invention was inserted in the white balance adjustment jig | tool. 電子内視鏡スコープの湾曲部を説明する説明図である。It is explanatory drawing explaining the curved part of an electronic endoscope scope. 本発明の実施形態に係るホワイトバランス調整治具を示す斜視図である。It is a perspective view which shows the white balance adjustment jig which concerns on embodiment of this invention. 出荷時におけるホワイトバランス調整処理のフローチャートである。It is a flowchart of the white balance adjustment process at the time of shipment. 観察時におけるホワイトバランス調整処理のフローチャートである。It is a flowchart of the white balance adjustment process at the time of observation.

以下、本発明の実施形態について図面を参照して説明する。   Embodiments of the present invention will be described below with reference to the drawings.

図1は、本発明の実施形態に係る電子内視鏡スコープ10を備える電子内視鏡システムの構成と回路構成を模式的に示した図であり、図2は電子内視鏡スコープ10がホワイトバランス調整治具50に挿入された状態を説明する説明図であり、図3は電子内視鏡スコープ10の湾曲部11cを説明する説明図であり、図4はホワイトバランス調整治具50を示す模式的な斜視図である。   FIG. 1 is a diagram schematically showing a configuration and a circuit configuration of an electronic endoscope system including an electronic endoscope scope 10 according to an embodiment of the present invention, and FIG. FIG. 3 is an explanatory view for explaining a state of being inserted into the balance adjustment jig 50, FIG. 3 is an explanatory view for explaining the bending portion 11 c of the electronic endoscope scope 10, and FIG. 4 shows the white balance adjustment jig 50. It is a typical perspective view.

図1に示すように、電子内視鏡システムは、被写体の撮影に用いられる電子内視鏡スコープ10と、電子内視鏡スコープ10から送られる映像信号を処理するためのプロセッサ20と、被写体画像等を表示するモニタ40と、図2、4に示すホワイトバランス調整治具50を備える。電子内視鏡スコープ10は、プロセッサ20に着脱自在に取付けられ、使用される。プロセッサ20にはモニタ40が接続され、プロセッサ20の側面には、オペレータが指示信号等を入力するためのフロントパネルFPを備える。   As shown in FIG. 1, the electronic endoscope system includes an electronic endoscope scope 10 used for photographing a subject, a processor 20 for processing a video signal sent from the electronic endoscope scope 10, and a subject image. And a white balance adjusting jig 50 shown in FIGS. The electronic endoscope scope 10 is detachably attached to the processor 20 and used. A monitor 40 is connected to the processor 20, and a side panel of the processor 20 is provided with a front panel FP for an operator to input an instruction signal and the like.

プロセッサ20は、フロントパネルFPからの信号を受信し、プロセッサ20全体を制御するシステムコントローラ25と、電子内視鏡スコープ10から送られてくる映像信号を処理する前段信号処理回路21と、処理された映像信号を記憶する画像メモリ22と、モニタ40に被写体画像等を表示するための処理を行う後段映像信号処理回路23と、タイミングコントローラ24と、光源29を備える。タイミングコントローラ24では、信号の処理タイミングを調整するクロックパルスがプロセッサ20内の各回路及び後述の電子内視鏡スコープ10のコネクタ部18(図2参照)に設けられた第1及び第2のドライバ信号処理回路14、15に出力される。   The processor 20 receives a signal from the front panel FP, and is processed by a system controller 25 that controls the entire processor 20 and a pre-stage signal processing circuit 21 that processes a video signal sent from the electronic endoscope scope 10. An image memory 22 for storing the video signal, a post-stage video signal processing circuit 23 for performing processing for displaying a subject image or the like on the monitor 40, a timing controller 24, and a light source 29. In the timing controller 24, first and second drivers provided with clock pulses for adjusting the processing timing of signals are provided in each circuit in the processor 20 and a connector portion 18 (see FIG. 2) of the electronic endoscope scope 10 described later. It is output to the signal processing circuits 14 and 15.

光源29は、システムコントローラ25によって制御される電源26から電力が供給される。光源29から照射された照射光は、集光レンズ30を介して、集光レンズ30の前方に配置された絞り31によって光量が調整される。絞り31はモータ28の駆動によって開閉される。照射光は、超極細の光ファイバーの束からなり、電子内視鏡スコープ10に配設されるライトガイドLの入射端LcよりライトガイドLに入射する。モータ28は、前段信号処理回路21の制御信号により制御されるドライバ27によって駆動され、これにより、絞り31が所定量だけ開閉する。   The light source 29 is supplied with power from a power source 26 controlled by the system controller 25. The amount of light emitted from the light source 29 is adjusted by a diaphragm 31 disposed in front of the condenser lens 30 via the condenser lens 30. The diaphragm 31 is opened and closed by driving the motor 28. Irradiation light consists of a bundle of ultra-fine optical fibers and enters the light guide L from the incident end Lc of the light guide L disposed in the electronic endoscope scope 10. The motor 28 is driven by a driver 27 that is controlled by a control signal from the front-stage signal processing circuit 21. As a result, the diaphragm 31 opens and closes by a predetermined amount.

図2に示すように、電子内視鏡スコープ10は、操作者が握り、電子内視鏡スコープ10の動きを操作するための操作部17と、プロセッサ20に着脱自在に接続するためのコネクタ部18を備える。操作部17には被験者の体内に挿入される可撓性の管状の挿入部11の基端が連結されている。挿入部11は、可撓管部11f、湾曲部11c及び先端部11tが順に連結されて構成される。挿入部11の湾曲部11cは、操作者の操作部17の操作により、湾曲部11cが上下または左右方向に湾曲し、例えば図3に示すように、先端部11tが所望の方向に向けられる。   As shown in FIG. 2, the electronic endoscope scope 10 includes an operation unit 17 that is gripped by an operator and operates the movement of the electronic endoscope scope 10, and a connector unit that is detachably connected to the processor 20. 18 is provided. The operation portion 17 is connected to the proximal end of a flexible tubular insertion portion 11 to be inserted into the body of the subject. The insertion portion 11 is configured by sequentially connecting a flexible tube portion 11f, a bending portion 11c, and a distal end portion 11t. As for the bending part 11c of the insertion part 11, the bending part 11c curves up and down or the left-right direction by operation of the operation part 17 of an operator, for example, as shown in FIG. 3, the front-end | tip part 11t is orient | assigned to the desired direction.

ライトガイドLは、電子内視鏡スコープ10内において操作部17を介して挿入部11に達し、挿入部11において分岐して挿入部先端11a及び挿入部側面11bまで延設され、2つの端部La、Lbを有する。ライトガイドLにより伝達された照明光は、端部La、Lbから後述する第1及び第2の配光レンズ12a、13aを介して観察部位に向かって照射される。   The light guide L reaches the insertion portion 11 through the operation portion 17 in the electronic endoscope scope 10, branches at the insertion portion 11, and extends to the insertion portion distal end 11a and the insertion portion side surface 11b, and has two end portions. It has La and Lb. The illumination light transmitted by the light guide L is irradiated from the end portions La and Lb toward the observation site via first and second light distribution lenses 12a and 13a described later.

図3に示すように、挿入部11において、挿入部先端11aは第1の撮像部12を、挿入部先端11a以外の側面である挿入部側面11bは第2の撮像部13を備える。第2の撮像部13は、挿入部11の湾曲部11cに設けられる。湾曲部11cの湾曲により、第2の撮像部13は矢印Aで示す挿入方向(挿入部先端11a側)を向くようになり、第1の撮像部12は挿入方向と反対方向(操作部17側)を向くようになる。このように、湾曲部11cが所定方向に湾曲された場合には、挿入方向の前方と後方の両方を同時に観察することが可能となる。湾曲部11cを湾曲させずに使用する場合には、第1の撮像部12により挿入方向の前方側を、第2の撮像部13により第1の撮像部12の観察部位よりもやや後方であり、第1の撮像部12の観察部位に対して直交する部位を観察する。このように、本発明の実施形態に係る電子内視鏡スコープ10では、1つのスコープの挿入部11に、撮影方向の異なる撮像部12、13を備える構成となっている。   As shown in FIG. 3, in the insertion unit 11, the insertion unit distal end 11 a includes the first imaging unit 12, and the insertion unit side surface 11 b that is a side surface other than the insertion unit distal end 11 a includes the second imaging unit 13. The second imaging unit 13 is provided in the bending portion 11 c of the insertion unit 11. Due to the bending of the bending portion 11c, the second imaging unit 13 comes to face the insertion direction indicated by the arrow A (the insertion unit distal end 11a side), and the first imaging unit 12 is the direction opposite to the insertion direction (the operation unit 17 side). ). As described above, when the bending portion 11c is bent in a predetermined direction, it is possible to simultaneously observe both the front and rear in the insertion direction. When the bending portion 11c is used without being bent, the front side in the insertion direction by the first imaging unit 12 is slightly behind the observation site of the first imaging unit 12 by the second imaging unit 13. The region orthogonal to the observation region of the first imaging unit 12 is observed. As described above, the electronic endoscope scope 10 according to the embodiment of the present invention is configured to include the imaging units 12 and 13 having different imaging directions in the insertion unit 11 of one scope.

図1に示すように、第1及び第2の撮像部12、13は、それぞれ、ライトガイドLにより導かれ、端部La、Lbにより出射された照射光を観察部位に配光するための拡散レンズである第1及び第2の配光レンズ12a、13aと、観察部位において反射した光を通過させる第1及び第2の対物レンズ12b、13bと、第1及び第2の撮像素子12c、13cとを備える。第1及び第2の撮像素子12c、13cは、例えばCCDやCMOS撮像素子等が使用される。また、本実施形態では、通常の観察時では主として第1の撮像素子12cにより挿入方向の前方側を観察するため、例えば、第1の撮像素子12cは130万画素、第2の撮像素子13cは30万画素程度の画素数に設定する。   As shown in FIG. 1, the first and second imaging units 12 and 13 are each guided by the light guide L and diffused to distribute the irradiation light emitted from the end portions La and Lb to the observation site. First and second light distribution lenses 12a and 13a, which are lenses, first and second objective lenses 12b and 13b that allow light reflected at the observation site to pass, and first and second imaging elements 12c and 13c With. As the first and second image sensors 12c and 13c, for example, CCDs or CMOS image sensors are used. In the present embodiment, since the front side in the insertion direction is mainly observed by the first image sensor 12c during normal observation, for example, the first image sensor 12c has 1.3 million pixels, and the second image sensor 13c has The number of pixels is set to about 300,000 pixels.

第1の撮像素子12cの駆動は第1のドライバ信号処理回路14から駆動信号により制御され、第2の撮像素子13cの駆動は第2のドライバ信号処理回路15から駆動信号により制御される。第1及び第2のドライバ信号処理回路14、15は、プロセッサ20のタイミングコントローラ24によって制御される。観察部位において反射した光は、第1及び第2の対物レンズ12b、13bを介して第1及び第2の撮像素子12c、13cの受光面に到達する。これにより観察部位の被写体像が第1及び第2の撮像素子12c、13cの受光面に形成される。第1及び第2の撮像素子12c、13cで発生した映像信号は、所定の方式に従って順次読み出され、第1及び第2のドライバ信号処理回路14、15へ送られる。   The drive of the first image sensor 12c is controlled by a drive signal from the first driver signal processing circuit 14, and the drive of the second image sensor 13c is controlled by a drive signal from the second driver signal processing circuit 15. The first and second driver signal processing circuits 14 and 15 are controlled by the timing controller 24 of the processor 20. The light reflected at the observation site reaches the light receiving surfaces of the first and second imaging elements 12c and 13c via the first and second objective lenses 12b and 13b. As a result, a subject image of the observation site is formed on the light receiving surfaces of the first and second imaging elements 12c and 13c. Video signals generated by the first and second imaging elements 12c and 13c are sequentially read out according to a predetermined method and sent to the first and second driver signal processing circuits 14 and 15.

第1のドライバ信号処理回路14では、第1の撮像素子12cから読みだされる映像信号に対して、A/D変換の後に第1のホワイトバランス調整等のプロセス処理が施される。第2のドライバ信号処理回路15では、第2の撮像素子13cから読みだされる映像信号に対して、A/D変換の後に第2のホワイトバランス調整等のプロセス処理が施される。プロセス処理が施された各映像信号は、プロセッサ20の前段信号処理回路21へ送られる。後述するように、ホワイトバランス調整後の映像信号のゲイン値の差分は、観察時におけるホワイトバランス用の補正値としてコネクタ部18(図2参照)に設けられたメモリ16に記憶される。ここで、ホワイトバランス調整は、R:G:Bの比が1:1:1となるようにR、G、Bのゲイン調整を行う調整である。   In the first driver signal processing circuit 14, process processing such as first white balance adjustment is performed on the video signal read from the first image sensor 12 c after A / D conversion. In the second driver signal processing circuit 15, the video signal read from the second image sensor 13 c is subjected to process processing such as second white balance adjustment after A / D conversion. Each video signal subjected to the process processing is sent to the previous stage signal processing circuit 21 of the processor 20. As will be described later, the difference between the gain values of the video signal after white balance adjustment is stored in a memory 16 provided in the connector unit 18 (see FIG. 2) as a white balance correction value at the time of observation. Here, the white balance adjustment is an adjustment for adjusting the gains of R, G, and B so that the ratio of R: G: B is 1: 1: 1.

図2、4に示すように、ホワイトバランス調整は、図4に示すホワイトバランス調整治具50を用いて、操作者がプロセッサ20のフロントパネルFPに設けられたスイッチを操作することにより実行される。   As shown in FIGS. 2 and 4, the white balance adjustment is executed when the operator operates a switch provided on the front panel FP of the processor 20 using the white balance adjustment jig 50 shown in FIG. 4. .

図4に示すように、本発明の実施形態に係るホワイトバランス調整治具50は、開口52bより矢印Aの方向に電子内視鏡スコープ10の挿入部11が挿入された際に、第1の撮像部12に対向する円形の底部51と、底部51に直交するように設けられた円筒状の側面52を備えた形状であり、側面52の一部を切り欠くことにより、第2の撮像部13に対向する面が他よりも突出した突出部(壁部)52aを構成している。ホワイトバランス調整治具50の内側は白色に塗られており、底部51、側面52及び突出部52aの内面は、ホワイトバランスの基準となる白色領域となっている。側面52の内径は電子内視鏡スコープ10の挿入部先端11aの径よりも一回り大きく設定されている。   As shown in FIG. 4, the white balance adjusting jig 50 according to the embodiment of the present invention is configured such that when the insertion portion 11 of the electronic endoscope scope 10 is inserted in the direction of arrow A from the opening 52 b, the first The second imaging unit has a shape including a circular bottom 51 facing the imaging unit 12 and a cylindrical side surface 52 provided to be orthogonal to the bottom 51, and a part of the side surface 52 is cut away. The surface which opposes 13 comprises the protrusion part (wall part) 52a which protruded rather than the others. The inner side of the white balance adjustment jig 50 is painted white, and the inner surfaces of the bottom 51, the side surface 52, and the protrusion 52a are white regions that serve as a reference for white balance. The inner diameter of the side surface 52 is set to be slightly larger than the diameter of the insertion portion distal end 11 a of the electronic endoscope scope 10.

ホワイトバランス調整治具50内に挿入された電子内視鏡スコープ10の第1の撮像部12は、ホワイトバランス調整治具50の底部51の内面を利用して、また、第2の撮像部13はホワイトバランス調整治具50の突出部52aの内面を利用してホワイトバランス調整が実行される。ホワイトバランス値は、例えばR、Bゲイン値である。本実施形態では、ホワイトバランス調整において、第1及び第2のドライバ信号処理回路14、15において得られるR、G、B信号の比が1:1:1となるように、G信号を基準として、第1及び第2の撮像素子12c、13cから得られる各映像信号のR、Bゲイン値を調整する。   The first imaging unit 12 of the electronic endoscope scope 10 inserted into the white balance adjustment jig 50 uses the inner surface of the bottom 51 of the white balance adjustment jig 50 and the second imaging unit 13. The white balance adjustment is executed using the inner surface of the protrusion 52a of the white balance adjustment jig 50. The white balance value is, for example, an R or B gain value. In this embodiment, in the white balance adjustment, the G signal is used as a reference so that the ratio of the R, G, and B signals obtained in the first and second driver signal processing circuits 14 and 15 is 1: 1: 1. The R and B gain values of the video signals obtained from the first and second image sensors 12c and 13c are adjusted.

第1の撮像素子12cから読みだされる映像信号に対してホワイトバランス調整が施された後の映像信号のゲイン値と、第2の撮像素子13cから読みだされる映像信号に対してホワイトバランス調整が施された後の映像信号のゲイン値との差分は、観察時におけるホワイトバランス用の補正値として生産時(工場出荷時)に設定され、メモリ16に記憶される。   The gain value of the video signal after white balance adjustment is performed on the video signal read from the first image sensor 12c and the white balance for the video signal read from the second image sensor 13c. The difference from the gain value of the video signal after the adjustment is set at the time of production (at the time of factory shipment) as a correction value for white balance at the time of observation and is stored in the memory 16.

観察時においては、上述のホワイトバランス調整治具50を用いて第1の撮像素子12cから読みだされる映像信号に対してのみ第1のドライバ信号処理回路14によってホワイトバランス調整が実行される。そして、ホワイトバランス調整で得られた第1の撮像素子12cの映像信号のゲイン値と、生産時に設定された補正値との差分が、観察時における第2の撮像素子13cの映像信号のゲイン値として算出される。この算出されたゲイン値を用いて、第2のドライバ信号処理回路15において、第2の撮像素子13cから読みだされた映像信号に対してホワイトバランス調整を実行する。   At the time of observation, the white balance adjustment is executed by the first driver signal processing circuit 14 only for the video signal read from the first image sensor 12c using the white balance adjustment jig 50 described above. The difference between the gain value of the video signal of the first image sensor 12c obtained by the white balance adjustment and the correction value set during production is the gain value of the video signal of the second image sensor 13c at the time of observation. Is calculated as Using the calculated gain value, the second driver signal processing circuit 15 performs white balance adjustment on the video signal read from the second image sensor 13c.

電子内視鏡スコープ10の第1及び第2のドライバ信号処理回路14、15から出力されたデジタルの映像信号は、プロセッサ20内の前段信号処理回路21において所定の信号処理が施される。前段信号処理回路21、画像メモリ22及び後段映像信号処理回路23のタイミングは、タイミングコントローラ24からの同期信号に基づいて制御される。前段信号処理回路21で施される画像処理は、例えば、輪郭強調、ノイズリダクション、ガンマ補正、擬似色素散布処理、特定周波数強調、色変換等があげられる。   The digital video signals output from the first and second driver signal processing circuits 14 and 15 of the electronic endoscope scope 10 are subjected to predetermined signal processing in a preceding signal processing circuit 21 in the processor 20. The timings of the pre-stage signal processing circuit 21, the image memory 22, and the post-stage video signal processing circuit 23 are controlled based on a synchronization signal from the timing controller 24. Examples of the image processing performed by the pre-stage signal processing circuit 21 include contour enhancement, noise reduction, gamma correction, pseudo pigment dispersion processing, specific frequency enhancement, color conversion, and the like.

後段映像信号処理回路23では、画像信号がアナログ信号に変換され、増幅処理、クランプ処理、ブランキング処理等のプロセス処理が施され、ビデオ信号ケーブル(図示せず)を介して例えばモニタ40に出力される。これにより観察部位の画像がモニタ40に映し出される。モニタ40の他に、例えばビデオプリンタやVCR等の装置に接続されても構わない。また、後段映像信号処理回路23における処理のタイミングは、タイミングコントローラ24からの同期信号に基づいて制御される。   In the post-stage video signal processing circuit 23, the image signal is converted into an analog signal, subjected to process processing such as amplification processing, clamping processing, blanking processing, and the like, and is output to, for example, the monitor 40 via a video signal cable (not shown). Is done. As a result, an image of the observation site is displayed on the monitor 40. In addition to the monitor 40, it may be connected to a device such as a video printer or a VCR. In addition, the processing timing in the post-stage video signal processing circuit 23 is controlled based on the synchronization signal from the timing controller 24.

電子内視鏡スコープ10の操作部17のフリーズボタン(図示せず)が操作されると、画像メモリ22の画像データが保持され、後段映像信号処理回路23には、画像メモリ22に保持された画像データが繰り返し出力される。これにより、モニタ40には画像メモリ22に保持された画像が静止画像として表示される。また、電子内視鏡スコープ10が、アナログの画像信号を出力する場合には、前段信号処理回路21においてデコード処理、A/D変換処理が施され、以下同様の処理が行なわれる。   When a freeze button (not shown) of the operation unit 17 of the electronic endoscope scope 10 is operated, the image data in the image memory 22 is held, and the post-stage video signal processing circuit 23 holds the image data. Image data is output repeatedly. As a result, the image held in the image memory 22 is displayed on the monitor 40 as a still image. When the electronic endoscope scope 10 outputs an analog image signal, the preceding signal processing circuit 21 performs decoding processing and A / D conversion processing, and the same processing is performed thereafter.

次に、図5、6を参照して、本実施形態に係る電子内視鏡スコープ10のホワイトバランス調整方法について説明する。図5は出荷時におけるホワイトバランス調整処理のフローチャートであり、図6は観察時におけるホワイトバランス調整処理のフローチャートである。   Next, a white balance adjustment method for the electronic endoscope scope 10 according to the present embodiment will be described with reference to FIGS. FIG. 5 is a flowchart of white balance adjustment processing at the time of shipment, and FIG. 6 is a flowchart of white balance adjustment processing at the time of observation.

まず、図5を用いて出荷時におけるホワイトバランス調整処理を説明する。電子内視鏡スコープ10のコネクタ部18がプロセッサ20に接続され、例えば、フロントパネルFPにおいて所定のスイッチ操作がなされ、電子内視鏡スコープ10の挿入部11が開口部52bからホワイトバランス調整治具50に挿入されると、ホワイトバランス調整処理が開始される。なお、本ホワイトバランス調整処理に先立ち、電子内視鏡システムの電源は既にONになっており、光源29は点灯され、プロセッサ20や電子内視鏡スコープ10の制御も開始されているものとする。   First, the white balance adjustment process at the time of shipment will be described with reference to FIG. The connector portion 18 of the electronic endoscope scope 10 is connected to the processor 20, for example, a predetermined switch operation is performed on the front panel FP, and the insertion portion 11 of the electronic endoscope scope 10 is moved from the opening 52b to the white balance adjusting jig. When it is inserted in 50, white balance adjustment processing is started. Prior to the white balance adjustment process, the electronic endoscope system is already turned on, the light source 29 is turned on, and control of the processor 20 and the electronic endoscope scope 10 is started. .

ステップS101では、第1の撮像素子12cから読みだされた映像信号は、ホワイトバランス調整治具50の底部51の内面を利用して、R、G、B信号の比が1:1:1となるようにG信号を基準としてR、Bゲイン値が調整されて、R、B調整ゲインデータR1、B1が得られる。ステップS102では、第2の撮像素子13cから読みだされた映像信号は、ホワイトバランス調整治具50の突出部52aの内面を利用して、R、G、B信号の比が1:1:1となるようにG信号を基準としてR、Bゲイン値が調整されて、R、B調整ゲインデータR2、B2が得られる。ステップS103では、R、B調整ゲインデータR1、B1とR、B調整ゲインデータR2、B2との差分を算出することにより、補正値Rd、Bdが得られる。ステップS104では、得られた補正値Rd、Bdを、観察時におけるホワイトバランス用の補正値としてメモリ16に記憶し、これによりホワイトバランス調整処理は終了する。   In step S101, the video signal read from the first image sensor 12c uses the inner surface of the bottom 51 of the white balance adjustment jig 50, and the ratio of R, G, and B signals is 1: 1: 1. The R and B gain values are adjusted with the G signal as a reference, and R and B adjustment gain data R1 and B1 are obtained. In step S102, the video signal read from the second image sensor 13c uses the inner surface of the protrusion 52a of the white balance adjustment jig 50, and the ratio of R, G, and B signals is 1: 1: 1. R and B gain values are adjusted using the G signal as a reference so that R and B adjustment gain data R2 and B2 are obtained. In step S103, correction values Rd and Bd are obtained by calculating differences between R and B adjustment gain data R1 and B1 and R and B adjustment gain data R2 and B2. In step S104, the obtained correction values Rd and Bd are stored in the memory 16 as correction values for white balance at the time of observation, whereby the white balance adjustment process is completed.

次に、図6を用いて観察時におけるホワイトバランス調整処理を説明する。電子内視鏡スコープ10のコネクタ部18がプロセッサ20に接続され、例えば、フロントパネルFPにおいて所定のスイッチ操作がなされ、電子内視鏡スコープ10の挿入部11が開口部52bからホワイトバランス調整治具50に挿入されると、ホワイトバランス調整処理が開始される。なお、本ホワイトバランス調整処理に先立ち、電子内視鏡システムの電源は既にONになっており、光源29は点灯され、プロセッサ20や電子内視鏡スコープ10の制御も開始されているものとする。   Next, white balance adjustment processing during observation will be described with reference to FIG. The connector portion 18 of the electronic endoscope scope 10 is connected to the processor 20, for example, a predetermined switch operation is performed on the front panel FP, and the insertion portion 11 of the electronic endoscope scope 10 is moved from the opening 52b to the white balance adjusting jig. When it is inserted in 50, white balance adjustment processing is started. Prior to the white balance adjustment process, the electronic endoscope system is already turned on, the light source 29 is turned on, and control of the processor 20 and the electronic endoscope scope 10 is started. .

ステップS201では、第1の撮像素子12cから読みだされた映像信号は、ホワイトバランス調整治具50の底部51の内面を利用して、R、G、B信号の比が1:1:1となるようにG信号を基準としてR、Bゲイン値が調整されてR、B調整ゲインデータRn1、Bn1が得られる。ステップS202では、メモリ16に記憶された補正値Rd、Bdが読み出されて、R、B調整ゲインデータRn1、Bn1と補正値Rd、Bdとの差分が算出される。算出により得られた値は、観察時における第2の撮像素子13のR、B調整ゲインデータRn2、Bn2として用いられる。   In step S201, the video signal read from the first image sensor 12c uses the inner surface of the bottom 51 of the white balance adjustment jig 50, and the ratio of R, G, and B signals is 1: 1: 1. Thus, the R and B gain values are adjusted with the G signal as a reference, and R and B adjustment gain data Rn1 and Bn1 are obtained. In step S202, the correction values Rd and Bd stored in the memory 16 are read, and the difference between the R and B adjustment gain data Rn1 and Bn1 and the correction values Rd and Bd is calculated. The values obtained by the calculation are used as R and B adjustment gain data Rn2 and Bn2 of the second image sensor 13 at the time of observation.

なお、観察時におけるホワイトバランス調整処理が終了すると、電子内視鏡スコープ10の通常の撮影動作が開始される。通常の撮影動作では、観察時におけるホワイトバランス調整処理により設定されたR、B調整ゲインデータRn1、Bn1と、R、B調整ゲインデータRn2、Bn2とに基づいて信号処理が施される。   In addition, when the white balance adjustment process at the time of observation is completed, a normal photographing operation of the electronic endoscope scope 10 is started. In a normal photographing operation, signal processing is performed based on the R and B adjustment gain data Rn1 and Bn1 and the R and B adjustment gain data Rn2 and Bn2 set by the white balance adjustment process at the time of observation.

以上示したように、本発明の実施形態に係る電子内視鏡スコープ、ホワイトバランス調整方法、電子内視鏡システム及びホワイトバランス調整治具では、1つのスコープの挿入部に、撮影方向の異なる撮像部を備える構成となっている電子内視鏡スコープにおいて、2つの撮像素子が1度で1つのホワイトバランス調整治具の内面に収まる。このため、出荷時において、各撮像素子に対して別々にホワイトバランス調整することなく、また2つの治具を用いることなく、容易にかつ1度でホワイトバランス調整することが可能となる。   As described above, in the electronic endoscope scope, the white balance adjustment method, the electronic endoscope system, and the white balance adjustment jig according to the embodiment of the present invention, imaging with different shooting directions is performed on the insertion portion of one scope. In the electronic endoscope scope having the configuration, the two image pickup elements fit into the inner surface of one white balance adjusting jig at a time. For this reason, at the time of shipment, the white balance can be easily adjusted at a time without adjusting the white balance separately for each image sensor and without using two jigs.

また、出荷時にメモリに補正値を記憶し、観察時においてはメモリから補正値を読み出すことにより、スコープ挿入部先端にある第1の撮像素子のみホワイトバランス調整を実行すればよく、第2の撮像素子のホワイトバランス調整は必要ない。これにより、観察時におけるホワイトバランス調整が容易となる。また、出荷時とは異なる既存のホワイトバランス調整治具、例えば、本発明の実施形態に係るホワイトバランス調整治具のように一部が突出していない円筒形状の治具であり、第1の撮像素子のみが覆われる形状の治具を用いることも可能である。   Further, the correction value is stored in the memory at the time of shipment, and the correction value is read from the memory at the time of observation, so that the white balance adjustment is performed only on the first image pickup element at the distal end of the scope insertion unit, and the second image pickup is performed. It is not necessary to adjust the white balance of the element. This facilitates white balance adjustment during observation. In addition, an existing white balance adjustment jig different from that at the time of shipment, for example, a cylindrical jig that does not partially protrude like the white balance adjustment jig according to the embodiment of the present invention, and the first imaging It is also possible to use a jig having a shape in which only the element is covered.

なお、本発明の実施形態に係るホワイトバランス調整治具は、側面の一部を切り欠いたような突出部を有する形状となっており、第2の撮像素子の対向する面は筒状とはなっていない。第2の撮像素子の存在する挿入部側面の全面を覆う形状とすると、ホワイトバランス調整治具の白色の内面が映り込む可能性があるため、第2の撮像素子が対向するホワイトバランス調整治具の突出部は部分的であることが好ましい。   In addition, the white balance adjustment jig according to the embodiment of the present invention has a shape having a protruding portion with a part of the side surface cut away, and the opposing surface of the second image sensor is cylindrical. is not. Since the white inner surface of the white balance adjustment jig may be reflected if the shape covers the entire side surface of the insertion portion where the second image sensor exists, the white balance adjustment jig facing the second image sensor It is preferable that the protrusion part of is partial.

また、本発明の実施形態に係る電子内視鏡スコープ及びホワイトバランス調整方法では、補正値を2つの映像信号のゲイン値の差分としたが、補正値を2つの映像信号のゲイン値の比としてもかまわない。   In the electronic endoscope scope and the white balance adjustment method according to the embodiment of the present invention, the correction value is the difference between the gain values of the two video signals, but the correction value is the ratio of the gain values of the two video signals. It doesn't matter.

10 電子内視鏡スコープ
11 挿入部
11a 挿入部先端
11b 挿入部側面
12 第1の撮像部
12c 第1の撮像素子
13 第2の撮像部
13c 第2の撮像素子
16 メモリ
20 プロセッサ
21 前段信号処理回路
22 画像メモリ
23 後段映像信号処理回路
24 タイミングコントローラ
25 システムコントローラ
40 モニタ
50 ホワイトバランス調整治具
51 底部
52 側面
52a 突出部(壁部)
L ライトガイド
A 挿入方向
DESCRIPTION OF SYMBOLS 10 Electronic endoscope scope 11 Insertion part 11a Insertion part front-end | tip 11b Insertion part side surface 12 1st image pick-up part 12c 1st image pick-up element 13 2nd image pick-up part 13c 2nd image pick-up element 16 Memory 20 Processor 21 Previous stage signal processing circuit 22 Image memory 23 Rear stage video signal processing circuit 24 Timing controller 25 System controller 40 Monitor 50 White balance adjustment jig 51 Bottom 52 Side 52a Projection (wall)
L Light guide A Insertion direction

Claims (5)

挿入部の先端に設けられた第1の撮像素子と、
前記挿入部の側面に設けられた第2の撮像素子と、
前記第1の撮像素子から読みだされる映像信号に対して第1のホワイトバランス調整が施された後の映像信号のゲイン値と、前記第2の撮像素子から読みだされる映像信号に対して第2のホワイトバランス調整が施された後の映像信号のゲイン値との差分を、観察時におけるホワイトバランス用の補正値として記憶するメモリと
を備えることを特徴とする電子内視鏡スコープ。
A first imaging element provided at the distal end of the insertion portion;
A second imaging element provided on a side surface of the insertion portion;
The gain value of the video signal after the first white balance adjustment is performed on the video signal read from the first image sensor and the video signal read from the second image sensor And a memory for storing a difference from the gain value of the video signal after the second white balance adjustment as a correction value for white balance at the time of observation.
前記第2の撮像素子は、前記挿入部の湾曲部に設けられることを特徴とする請求項1に記載の電子内視鏡スコープ。   The electronic endoscope scope according to claim 1, wherein the second imaging element is provided in a bending portion of the insertion portion. 請求項1に係る電子内視鏡スコープのホワイトバランス調整方法であって、
前記第1の撮像素子から読みだされる映像信号に対して第3のホワイトバランス調整を施し、
前記第3のホワイトバランス調整後の前記第1の撮像素子の映像信号のゲイン値と、前記メモリに記憶された前記補正値との差分を、観察時における前記第2の撮像素子の映像信号のゲイン値として算出することを特徴とするホワイトバランス調整方法。
A white balance adjustment method for an electronic endoscope scope according to claim 1,
Performing a third white balance adjustment on the video signal read from the first image sensor;
The difference between the gain value of the video signal of the first image sensor after the third white balance adjustment and the correction value stored in the memory is the difference of the video signal of the second image sensor at the time of observation. A white balance adjustment method characterized by calculating as a gain value.
挿入部の先端に設けられた第1の撮像素子と、
前記挿入部の側面に設けられた第2の撮像素子と、
前記第1の撮像素子から読みだされる映像信号に対して第1のホワイトバランス調整が施された後の映像信号のゲイン値と、前記第2の撮像素子から読みだされる映像信号に対して第2のホワイトバランス調整が施された後の映像信号のゲイン値との差分を、観察時におけるホワイトバランス用の補正値として記憶するメモリとを備える電子内視鏡スコープと、
前記第1の撮像素子に対向する底部と、前記第2の撮像素子に対向する壁部とを備える前記電子内視鏡スコープのホワイトバランス調整治具と
を備えることを特徴とする電子内視鏡システム。
A first imaging element provided at the distal end of the insertion portion;
A second imaging element provided on a side surface of the insertion portion;
The gain value of the video signal after the first white balance adjustment is performed on the video signal read from the first image sensor and the video signal read from the second image sensor An electronic endoscope scope including a memory that stores a difference between the gain value of the video signal after the second white balance adjustment and a correction value for white balance at the time of observation;
An electronic endoscope comprising: a white balance adjusting jig of the electronic endoscope scope, comprising: a bottom portion facing the first image sensor; and a wall portion facing the second image sensor. system.
挿入部の先端に設けられた第1の撮像素子と、前記挿入部の側面に設けられた第2の撮像素子とを備える電子内視鏡スコープのホワイトバランス調整治具であって、
前記ホワイトバランス調整治具は、前記第1の撮像素子に対向する底部と、
前記第2の撮像素子に対向する壁部と
を備えることを特徴とするホワイトバランス調整治具。
A white balance adjustment jig for an electronic endoscope scope comprising a first image sensor provided at a distal end of an insertion portion and a second image sensor provided on a side surface of the insertion portion,
The white balance adjusting jig includes a bottom portion facing the first image sensor,
A white balance adjustment jig, comprising: a wall portion facing the second imaging element.
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